An integrated shear-wave velocity model for the Groningen gas field, The Netherlands

被引:60
|
作者
Kruiver, Pauline P. [1 ]
van Dedem, Ewoud [2 ]
Romijn, Remco [3 ]
de lange, Ger [1 ]
Korff, Mandy [1 ,4 ]
Stafleu, Jan [5 ]
Gunnink, Jan L. [5 ]
Rodriguez-Marek, Adrian [6 ]
Bommer, Julian J. [7 ]
van Elk, Jan [3 ]
Doornhof, Dirk [3 ]
机构
[1] Deltares, POB 177, NL-2600 MH Delft, Netherlands
[2] Shell Global Solut Int BV, POB 60, NL-2280 AB Rijswijk, Netherlands
[3] Nederlandse Aardolie Maatschappij BV, Schepersmaat 2, NL-9405 TA Assen, Netherlands
[4] Delft Univ Technol, Dept Geosci & Engn, Stevinweg 1, NL-2628 CN Delft, Netherlands
[5] TNO Geol Survey Netherlands, Princetonlaan 6, NL-3584 CB Utrecht, Netherlands
[6] Virginia Tech, Charles E Via Jr Dept Civil & Environm Engn, Blacksburg, VA 24061 USA
[7] Imperial Coll London, Dept Civil & Environm Engn, London SW7 2AZ, England
关键词
Shear-wave velocity; Site response analysis; Geology; Randomisation; Surface-wave inversion; Microzonation; SEISMIC-HAZARD; SUBSURFACE;
D O I
10.1007/s10518-017-0105-y
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
A regional shear-wave velocity (V-S) model has been developed for the Groningen gas field in the Netherlands as the basis for seismic microzonation of an area of more than 1000 km(2). The V-S model, extending to a depth of almost 1 km, is an essential input to the modelling of hazard and risk due to induced earthquakes in the region. The detailed V-S profiles are constructed from a novel combination of three data sets covering different, partially overlapping depth ranges. The uppermost 50 m of the V-S profiles are obtained from a high-resolution geological model with representative V-S values assigned to the sediments. Field measurements of V-S were used to derive representative V-S values for the different types of sediments. The profiles from 50 to 120 m are obtained from inversion of surface waves recorded (as noise) during deep seismic reflection profiling of the gas reservoir. The deepest part of the profiles is obtained from sonic logging and V-P-V-S relationships based on measurements in deep boreholes. Criteria were established for the splicing of the three portions to generate continuous models over the entire depth range for use in site response calculations, for which an elastic half-space is assumed to exist below a clear stratigraphic boundary and impedance contrast encountered at about 800 m depth. In order to facilitate fully probabilistic site response analyses, a scheme for the randomisation of the V-S profiles is implemented.
引用
收藏
页码:3555 / 3580
页数:26
相关论文
共 50 条
  • [1] An integrated shear-wave velocity model for the Groningen gas field, The Netherlands
    Pauline P. Kruiver
    Ewoud van Dedem
    Remco Romijn
    Ger de Lange
    Mandy Korff
    Jan Stafleu
    Jan L. Gunnink
    Adrian Rodriguez-Marek
    Julian J. Bommer
    Jan van Elk
    Dirk Doornhof
    [J]. Bulletin of Earthquake Engineering, 2017, 15 : 3555 - 3580
  • [2] Rigorous test of the performance of shear-wave velocity correlations derived from CPT soundings: A case study for Groningen, the Netherlands
    Kruiver, Pauline P.
    de Lange, Ger
    Kloosterman, Fred
    Korff, Mandy
    van Elk, Jan
    Doornhof, Dirk
    [J]. SOIL DYNAMICS AND EARTHQUAKE ENGINEERING, 2021, 140
  • [3] A physical model for shear-wave velocity prediction
    Xu, SY
    White, RE
    [J]. GEOPHYSICAL PROSPECTING, 1996, 44 (04) : 687 - 717
  • [4] Development of Model for Shear-Wave Velocity of Municipal Solid Waste
    Zekkos, Dimitrios
    Sahadewa, Andhika
    Woods, Richard D.
    Stokoe, Kenneth H., II
    [J]. JOURNAL OF GEOTECHNICAL AND GEOENVIRONMENTAL ENGINEERING, 2014, 140 (03)
  • [5] Uncertainty in Shear-Wave Velocity Profiles
    Gabriel R. Toro
    [J]. Journal of Seismology, 2022, 26 : 713 - 730
  • [6] Uncertainty in Shear-Wave Velocity Profiles
    Toro, Gabriel R.
    [J]. JOURNAL OF SEISMOLOGY, 2022, 26 (04) : 713 - 730
  • [7] POINT MEASUREMENT OF SHEAR-WAVE VELOCITY
    SPENCER, TW
    WU, RC
    [J]. GEOPHYSICS, 1985, 50 (02) : 351 - 351
  • [8] Compaction and subsidence of the Groningen gas field in the Netherlands
    van Thienen-Visser, K.
    Pruiksma, J. P.
    Breunese, J. N.
    [J]. Prevention and Mitigation of Natural and Anthropogenic Hazards due to Land Subsidence, 2015, 372 : 367 - 373
  • [9] Estimation of seabed shear-wave velocity profiles using shear-wave source data
    Dong, Hefeng
    Thanh-Duong Nguyen
    Duffaut, Kenneth
    [J]. JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2013, 134 (01): : 176 - 184
  • [10] Ambient noise multimode Rayleigh and Love wave tomography to determine the shear velocity structure above the Groningen gas field
    Chmiel, M.
    Mordret, A.
    Boue, P.
    Brenguier, F.
    Lecocq, T.
    Courbis, R.
    Hollis, D.
    Campman, X.
    Romijn, R.
    Van der Veen, W.
    [J]. GEOPHYSICAL JOURNAL INTERNATIONAL, 2019, 218 (03) : 1781 - 1795